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A constitutive model for Fe-based shape memory alloy considering martensitic transformation and plastic sliding coupling: Application to a finite element structural analysis

机译:考虑马氏体相变和塑性滑动耦合的铁基形状记忆合金本构模型:在有限元结构分析中的应用

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In this article, we propose a finite element numerical tool adapted to a Fe-based shape memory alloy structural analysis, based on a developed constitutive model that describes the effect of phase transformation, plastic sliding, and their interactions on the thermomechanical behavior. This model was derived from an assumed expression of the Gibbs free energy taking into account nonlinear interaction quantities related to inter- and intragranular incompatibilities as well as mechanical and chemical quantities. Two scalar internal variables were considered to describe the phase transformation and plastic sliding effects. The hysteretic and specific behavior patterns of Fe-based shape memory alloy during reverse transformation were studied by assuming a dissipation expression. The proposed model effectively describes the complex thermomechanical loading paths. The numerical tool derived from the implicit resolution of the nonlinear partial derivative constitutive equations was implemented into the Abaqus® finite element code via the User MATerial (UMAT) subroutine. After tests to verify the model for homogeneous and heterogeneous thermomechanical loadings, an example of Fe-based shape memory alloy application was studied, which corresponds to a tightening system made up of fishplates for crane rails. The results we obtained were compared to experimental ones.
机译:在本文中,我们基于已开发的本构模型,提出了一种适用于铁基形状记忆合金结构分析的有限元数值工具,该模型描述了相变,塑性滑动及其相互作用对热机械行为的影响。该模型源自吉布斯自由能的假定表达式,其中考虑了与颗粒间和颗粒内不相容性以及机械和化学量有关的非线性相互作用量。考虑了两个标量内部变量来描述相变和塑性滑动效应。通过假设耗散表达式,研究了铁基形状记忆合金在逆相变过程中的磁滞和特定行为模式。所提出的模型有效地描述了复杂的热机械加载路径。通过用户MATerial(UMAT)子例程将源自非线性偏导数本构方程的隐式分辨率的数值工具实现到Abaqus®有限元代码中。经过测试以验证均质和非均质热机械载荷的模型后,研究了一个基于Fe的形状记忆合金应用实例,该实例对应于由用于起重机轨道的鱼尾板组成的紧固系统。我们获得的结果与实验结果进行了比较。

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